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May 6, 2026Current Zoology0 citationsOpen Access

Optimized high-purity isolation of developing new macronuclei in Tetrahymena thermophila enables epigenetic analyses

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TCTing ChengJZJiachen ZhangJDJinghan Diao

Key Points

  • To develop a purification strategy for isolating new macronuclei in Tetrahymena thermophila to study epigenetic modifications.
  • Differential centrifugation was used for initial enrichment of new macronuclei.
  • Fluorescence-activated cell sorting (FACS) further purified the new macronuclei.
  • The method resulted in over 99% purity of isolated new macronuclei.
  • Achieved over 99% purity of new macronuclei through the optimized purification strategy.
  • Facilitated detailed studies of epigenetic reprogramming in Tetrahymena thermophila.
  • Provided a foundation for examining the roles of epigenetic modifications on genome stability and cell differentiation.

Abstract

Abstract The de novo establishment of epigenetic modifications plays a pivotal role in gene expression, maintaining genome stability, and cell differentiation. Tetrahymena thermophila provides an attractive model for studying de novo establishment of epigenetic modifications, as its developing new macronucleus (MAC) undergoes extensive epigenetic reprogramming during the sexual process of conjugation. Nevertheless, the coexistence of the new MACs with the parental MACs and new micronuclei (MICs) within the same cell, as well as parental MACs and MICs in non-mating cells within the same culture, has hindered detailed studies. To address this issue, we developed an optimized purification strategy including initial enrichment of new MACs by differential centrifugation, followed by further purification using fluorescence-activated cell sorting (FACS). With this two-step approach, we ultimately obtained new MACs with over 99% purity. This method will provide a crucial foundation for leveraging the new MAC to dissect the de novo establishment of epigenetic marks and their potential regulatory roles.

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Cite This Study

Cheng et al. (2026) studied this question.

synapsesocial.com/papers/69faa25e04f884e66b532ef3https://doi.org/10.1093/cz/zoag032
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